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Aggregating Author Profiles from Multiple Publisher Networks to Build Author Knowledge Graph

机译:聚合来自多个发布者网络的作者个人资料以构建作者知识图

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摘要

The use of recommender systems is widespread having roots in numerous fields. The backbone of the advancement in technology is due to the scientific research, hence, leveraging recommender system to enhance the quality of research and ease various stages from literature review to collaboration, is essential and recently in focus of various researchers. To select a strong candidate for potential collaboration, it is essential to evaluate the work put forward by the author, its impact, and the author influence network. In this paper, we propose a recommender system to aggregate author information from various publisher networks and build author knowledge graph, a commutative profile that enlightens all his contributions, impact and collaboration network. It would be useful for a researcher in understanding the author in great detail and evaluate his work for a potential collaboration.
机译:推荐系统的使用已经广泛地植根于许多领域。技术进步的中坚力量来自科学研究,因此,利用推荐系统来提高研究质量并简化从文献综述到合作的各个阶段,是至关重要的,并且最近成为各种研究人员的关注焦点。为了选择潜在的潜在合作者,必须评估作者提出的工作,其影响力以及作者的影响力网络。在本文中,我们提出了一个推荐系统,以汇总来自各种出版者网络的作者信息,并建立作者知识图,这是一个可交换的资料,可以启发他的所有贡献,影响力和协作网络。这对于研究人员非常详细地了解作者并评估其工作以进行潜在的合作将很有用。

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